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Updated: Jul 12, 2025

A Human Glioblastoma Organotypic Slice Culture Model for Study of Tumor Cell Migration and Patient-specific Effects of Anti-Invasive Drugs
Published on: July 20, 2017
Tumor-Derived Membrane Vesicles Restrain Migration in Gliomas By Altering Collective Polarization
Megha Jhunjhunwala1, Lin-Sheng Yu1, Ping-Chen Kuo1
1National Tsing Hua University, Hsinchu 300044, Republic of China.
Abstract:
Mechanobiology is a cornerstone in physiology. However, its role in biomedical applications remains considerably undermined. In this study, we employed cell membrane vesicles (CMVs), which are currently being used as nanodrug carriers, as tactile cues for mechano-regulation of collective cell behaviors. Gliomas, which are among the most resilient brain tumors and have a low patient survival rate, were used as the cell model. We observed that mechanical responses due to the application of glioma- or microglia-derived CMVs resulted in the doubling of the traction stress of glioma cell collectives with a 10-fold increase in the CMV concentration. Glioma-CMVs constrained cell protrusions and hindered their collective migration, with the migration speed of such cells declining by almost 40% compared to the untreated cells. We speculated that the alteration of collective polarization leads to migration speed changes, and this phenomenon was elucidated using the cellular Potts model. In addition to intracellular force modulation and cytoskeletal reorganization, glioma-CMVs altered drug diffusion within glioma spheroids by downregulating the mechano-signaling protein YAP-1 while also marginally enhancing the associated apoptotic events. Our results suggest that glioma-CMVs can be applied as an adjuvant to current treatment approaches to restrict tumor invasion and enhance the penetration of reagents within tumors. Considering the broad impact of mechano-transduction on cell functions, the regulation of cell mechanics through CMVs can provide a foundation for alternative therapeutic strategies.
Insights
Cell membrane vesicles (CMVs) regulate collective cell behavior. Glioma-derived CMVs reduced glioma cell migration and invasion, suggesting potential as adjuvant cancer therapy.
Area of Science:
- Biomedical Engineering
- Cellular Mechanobiology
- Cancer Research
Background:
- Mechanobiology's role in biomedical applications is underdeveloped.
- Cell membrane vesicles (CMVs) are utilized as nanodrug carriers.
- Gliomas are aggressive brain tumors with poor patient survival rates.
Purpose of the Study:
- To investigate the use of CMVs as tactile cues for mechano-regulation of collective cell behaviors.
- To explore the potential of glioma-derived CMVs in modulating glioma cell mechanics and behavior.
- To assess the therapeutic implications of CMVs in glioma treatment.
Main Methods:
- Utilized glioma- and microglia-derived CMVs as tactile cues.
- Quantified traction stress and cell migration speed of glioma cell collectives.
- Employed the cellular Potts model to elucidate migration speed changes.
- Analyzed intracellular force modulation, cytoskeletal reorganization, and drug diffusion.
Main Results:
- CMV application doubled glioma cell traction stress with increased concentration.
- Glioma-CMVs constrained cell protrusions, reducing collective migration speed by ~40%.
- Glioma-CMVs downregulated YAP-1, altered drug diffusion, and enhanced apoptosis in glioma spheroids.
Conclusions:
- Glioma-derived CMVs can regulate collective cell mechanics and behavior.
- CMVs show potential as an adjuvant therapy to restrict tumor invasion and improve reagent penetration.
- Regulating cell mechanics via CMVs offers a foundation for novel therapeutic strategies in cancer.
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